Structure–function coupling in the first month of life: Associations with age and attention

U Ursula A. Tooley (Department of Psychiatry, Washington University in St. Louis) J Jeanette K. Kenley (Department of Neurology, Washington University in St. Louis) M M. Catalina Camacho (Department of Psychiatry, Washington University in St. Louis) A Aidan Latham (Department of Neurology, Washington University in St. Louis) D Dimitrios Alexopoulos (Department of Neurology, Washington University in St. Louis) A Ashley N. Nielsen (Department of Psychiatry, Washington University School of Medicine) T Tara A. Smyser (Department of Psychiatry, Washington University in St. Louis) B Barbara B. Warner (Department of Pediatrics, Washington University in St. Louis) J Joshua S. Shimony (Department of Radiology, Washington University in St. Louis) J Jeffrey J. Neil (Department of Neurology, Washington University in St. Louis) J Joan L. Luby (Department of Neurology, Washington University in St. Louis) D Deanna M. Barch (Department of Psychiatry, Washington University in St. Louis) C Cynthia E. Rogers (Department of Psychiatry, Washington University in St. Louis) C Christopher D. Smyser (Department of Psychiatry, Washington University in St. Louis)

Abstract

How brain structure relates to function is a critical and open question in neuroscience. Here, we characterize regional variation in structure–function coupling, capturing the degree to which a cortical region’s structural connections relate to patterns of coordinated neural activity in healthy, term-born neonates ( n = 239). Regional structure–function coupling is heterogeneously patterned across the cortex, with higher coupling in the auditory, lateral prefrontal, and inferior parietal cortices. Average structure–function coupling is negatively associated with age during the first month of life, with age-associated decreases seen in primary sensory systems, specifically in auditory and somatomotor regions. Age-associated “decoupling” of structure and function reflects increasingly segregated patterns of functional connectivity and increasingly integrated patterns of white matter connectivity with age. Notably, higher structure–function coupling after accounting for age in the dorsal attention, cingulo-opercular, and visual systems at birth is associated with faster visuospatial attention to faces at one year of age. These results yield valuable insight into the development of structural and functional connectivity across the cortex, including how interregional variation in structure–function coupling during the first month of life might shape later attention.

Article Details

Volume / Issue Vol. 122, Issue 23
Published June 10, 2025
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (14)

U

Ursula A. Tooley

Department of Psychiatry, Washington University in St. Louis

J

Jeanette K. Kenley

Department of Neurology, Washington University in St. Louis

M

M. Catalina Camacho

Department of Psychiatry, Washington University in St. Louis

A

Aidan Latham

Department of Neurology, Washington University in St. Louis

D

Dimitrios Alexopoulos

Department of Neurology, Washington University in St. Louis

A

Ashley N. Nielsen

Department of Psychiatry, Washington University School of Medicine

T

Tara A. Smyser

Department of Psychiatry, Washington University in St. Louis

B

Barbara B. Warner

Department of Pediatrics, Washington University in St. Louis

J

Joshua S. Shimony

Department of Radiology, Washington University in St. Louis

J

Jeffrey J. Neil

Department of Neurology, Washington University in St. Louis

J

Joan L. Luby

Department of Neurology, Washington University in St. Louis

D

Deanna M. Barch

Department of Psychiatry, Washington University in St. Louis

C

Cynthia E. Rogers

Department of Psychiatry, Washington University in St. Louis

C

Christopher D. Smyser

Department of Psychiatry, Washington University in St. Louis